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Microstructure and mechanical properties of nano-carbon reinforced Cu-based powder metallurgy friction materials produced by hot isostatic pressing

机译:热等静压生产纳米碳增强Cu基粉末冶金摩擦材料的微观结构和力学性能

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摘要

Cu-based powder metallurgy friction material is technically one of the most important powder metallurgy friction materials due to its high conductivity, high strength, good thermal properties and wear endurance. In this paper, nano-carbon reinforced Cu-based powder metallurgy friction materials were prepared by hot isostatic pressing (HIP). Microstructure and mechanical properties of nano-carbon reinforced Cu-based powder metallurgy friction materials with different nano-carbon content were systematically investigated. The microstructures of the nanocomposites were examined by optical microscopy (OM), X-ray diffraction (XRD), back scattered electron imaging (BSE), scanning electron microscope (SEM) equipped with an energy dispersive spectrometer (EDS). Mechanical properties were determined from micro-hardness, shear strength and compressive strength. The fracture and strengthening mechanisms of nano-carbon reinforced Cu-based powder metallurgy friction materials are explored on the basis of the microstructure and composition of the nanocomposites along with the formation and function of the interface. The nano-carbon mainly enhances the nanocomposites by load transfer and obstruction of dislocation. The synergistic effect of multiwalled carbon nanotubes (MWCNTs)and graphene improves the dispersion but hinders the densification process. The interfaces between carbon and copper are the main source of cracks, and the nanocomposites are mainly composed of brittle fracture.
机译:基于Cu的粉末冶金摩擦材料技术上是最重要的粉末冶金摩擦材料之一,因为它的高导电性,高强度,良好的热性能和耐磨性。本文采用热等静压(髋峰)制备纳米碳增强Cu基粉末冶金摩尔摩擦材料。系统地研究了纳米碳增强Cu基粉末冶金摩尔摩擦材料的微观结构和力学性能。通过光学显微镜(OM),X射线衍射(XRD),背散射电子成像(BSE),扫描电子显微镜(SEM),检查纳米复合材料的微观结构,配备有能量分散光谱仪(EDS)。从微硬度,剪切强度和抗压强度确定机械性能。基于纳米复合材料的微观结构和组成以及界面的形成和功能,探讨了纳米碳增强Cu基粉末冶金摩尔玻璃冶金材料的断裂和强化机理。纳米碳主要通过负载转移和脱位阻塞来增强纳米复合材料。多壁碳纳米管(MWCNT)和石墨烯的协同效应改善了分散,但阻碍了致密化过程。碳和铜之间的界面是裂缝的主要来源,纳米复合材料主要由脆性骨折组成。

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